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Mónica Burriel

Researcher at University of Grenoble

Publications -  64
Citations -  2788

Mónica Burriel is an academic researcher from University of Grenoble. The author has contributed to research in topics: Oxide & Thin film. The author has an hindex of 23, co-authored 56 publications receiving 2275 citations. Previous affiliations of Mónica Burriel include Institute of Cost and Management Accountants of Bangladesh & Royal School of Mines.

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Advances in layered oxide cathodes for intermediate temperature solid oxide fuel cells

TL;DR: In this paper, the most important advances in this topic concentrating on both structural aspects and impact in cathode performance for solid oxide fuel cells (SOFCs) applications are highlighted. But, they do not consider the performance of the cathode in the intermediate-to-low range of temperatures.
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Materials for Intermediate-Temperature Solid-Oxide Fuel Cells

TL;DR: In this paper, the authors mainly examined the criteria for the development of two key components of intermediate-temperature solid-oxide fuel cells: the electrolyte and the cathode.
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Surface termination and subsurface restructuring of perovskite-based solid oxide electrode materials

TL;DR: In this paper, the outer atomic surfaces of a series of perovskite-based ceramics using low energy ion scattering spectroscopy were studied and it was shown that segregated A-site (or acceptor substituent) cations dominate the outer surfaces with no B-site cations detected.
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Anisotropic oxygen diffusion properties in epitaxial thin films of La2NiO4+δ

TL;DR: In this article, the tracer diffusion and surface exchange coefficients of high quality epitaxial thin films in the two perpendicular directions (transverse and longitudinal), by the isotopic exchange technique were measured on c-axis oriented La2NiO4+δ films grown on SrTiO3 and NdGaO3 by pulsed injection metal organic chemical vapour deposition (PIMOCVD).
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Anisotropic Oxygen Ion Diffusion in Layered PrBaCo2O5+δ

TL;DR: In this article, the diffusion and surface exchange coefficients of double perovskite oxide PrBaCo2O5+δ were measured using a time-of-flight SIMS instrument.